scholarly journals Parameter Identification of Cardiovascular System Model Used for Left Ventricular Assist Device Algorithms

Author(s):  
Suraj R. Pawar ◽  
Ethan S. Rapp ◽  
Jeffrey R. Gohean ◽  
R.G. Longoria

Abstract Advancement of implanted Left Ventricular Assist Device (LVAD) technology includes modern sensing and control methods to enable online diagnostics and monitoring of patients using on-board sensors. These methods often rely on a cardiovascular system (CVS) model, the parameters of which must be identified for the specific patient. Some of these, such as the Systemic Vascular Resistance (SVR), can be estimated online while others must be identified separately. This paper describes a three-staged approach for designing a parameter identification algorithm (PIA) for this problem. The approach is demonstrated using a two-element Windkessel model of the systemic circulation with a time-varying elastance for the left ventricle. A parameter identifiability stage is followed by identification using an unscented Kalman filter (UKF) which uses measurements of left ventricle pressure (Plv), aortic pressure (Pao), aortic flow (Qa), and known input measurement of LVAD flow rate (Qvad). Both simulation and experimental data from animal experiments were used to evaluate the presented methods. By bounding the initial guess for left ventricular volume, the identified CVS model is able to reproduce signals of Plv, Pao and Qa within a normalized root mean squared error (nRMSE) of 5.1 %, 19 %, and 11 %, respectively during simulations. Experimentally, the identified model is able to estimate SVR with an accuracy of 0.56 % compared with values from invasive measurements. Diagnostics and physiological control algorithms on-board modern LVADs could use CVS models other than those shown here, and the presented approach is easily adaptable to them. The methods also demonstrate how to test the robustness and accuracy of the identification algorithm.

2019 ◽  
Vol 11 (1) ◽  
pp. 97-100
Author(s):  
Dhananjay P. Malankar ◽  
Sachin Patil ◽  
Shivaji Mali ◽  
Shyam Dhake ◽  
Amit Mhatre ◽  
...  

Purpose: Numerous attempts have been made to extend the boundaries of arterial switch operation (ASO) in children presenting late with transposition of great arteries with intact ventricular septum (TGA/IVS) and regressed left ventricle (rLV). Many children tolerate the delayed ASO uneventfully, whereas others need mechanical circulatory support (MCS) to sustain the systemic circulation while the left ventricle undergoes retraining. Description: In this article, we describe six consecutive children with TGA/IVS and rLV who underwent primary ASO. Results: Three were managed medically, while three required MCS in the form of Centrimag left ventricular assist device (LVAD). All patients survived the operation and were discharged home in a stable condition. Conclusions: Primary ASO can be safely performed in children with TGA/IVS and rLV, provided the center has MCS options. Supporting the rLV with LVAD is feasible and can be achieved safely.


2013 ◽  
Vol 2013 ◽  
pp. 1-12 ◽  
Author(s):  
Selim Bozkurt ◽  
Koray K. Safak

Dilated cardiomyopathy is the most common type of the heart failure which can be characterized by impaired ventricular contractility. Mechanical circulatory support devices were introduced into practice for the heart failure patients to bridge the time between the decision to transplant and the actual transplantation which is not sufficient due to the state of donor organ supply. In this study, the hemodynamic response of a cardiovascular system that includes a dilated cardiomyopathic heart under support of a newly developed continuous flow left ventricular assist device—Heart Turcica Axial—was evaluated employing computer simulations. For the evaluation, a numerical model which describes the pressure-flow rate relations of Heart Turcica Axial, a cardiovascular system model describing the healthy and pathological hemodynamics, and a baroreflex model regulating the heart rate were used. Heart Turcica Axial was operated between 8000 rpm and 11000 rpm speeds with 1000 rpm increments for assessing the pump performance and response of the cardiovascular system. The results also give an insight about the range of the possible operating speeds of Heart Turcica Axial in a clinical application. Based on the findings, operating speed of Heart Turcica Axial should be between 10000 rpm and 11000 rpm.


ASAIO Journal ◽  
1999 ◽  
Vol 45 (1) ◽  
pp. 83-89 ◽  
Author(s):  
Jianhua Zhou ◽  
Guy P. Armstrong ◽  
Alexander L. Medvedev ◽  
William A. Smith ◽  
Leonard A. R. Golding ◽  
...  

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